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WWP2 and PPP1R3A are abnormally regulated in arrhythmia-induced cardiac damage
Qian Nie1, Jue Zhao1, Hongcai Zhang1
1Department of Cardiology, Hospital of Chengdu University of Traditional Chinese Medicine, No. 39 Shi-er-qiao Road, Chengdu, 610072 Sichuan China.
Abstract:
The present work aimed to identify the roles of WWP2 (an E3 ubiquitin-protein ligase) and protein phosphatase 1 regulatory subunit 3A (PPP1R3A) in different pathological stages of cardiac arrhythmia development. Leptin-deficient mice (C57BLKS-Leprdb/Leprdb) were used for the development of initial and severe stages of cardiac arrhythmia. Histology, ECG, immunohistochemistry and Western blotting were used to analyse cardiac arrhythmia, WWP2 and PPP1R3A expression. Histopathological studies of 4-month-old mice showed cardiac degeneration, cellular lesions, and swollen tissue structure with loss of tissue elasticity, indicative of the initial condition of cardiac arrhythmia. The leptin-deficient 7-month-old mice showed cardiac tissue hardening with increased secretion of extracellular matrix. The development of initial- and severe-cardiac arrhythmia was further evident with electrocardiogram studies, which showed more PP interval variations as the disease progressed. At the molecular level, WWP2 showed marginal upregulation in the initial stages of arrhythmia and was predominantly expressed within nuclei. WWP2 was overexpressed 6.6-fold in the severe stage of cardiac arrhythmia and was spread throughout the tissue layer. Interestingly, PPP1R3A was significantly overexpressed in initial cardiac arrhythmia conditions, but was downregulated and restricted to more nuclear expression in advanced cardiac arrhythmia. Silencing of PPP1R3A, enhances the expression of WWP2 to 5.3-fold in initial stages, but remarkable variation not observed in advanced cardiac arrhythmia conditions. Our results suggest that PPP1R3A had a control over WWP2 in the initial stages of cardiac arrhythmia. In particular, PPP1R3A overexpression implies its potential protective effect in initial cardiac arrhythmia stages.
Insights
Protein phosphatase 1 regulatory subunit 3A (PPP1R3A) may protect against initial cardiac arrhythmia by controlling WWP2 expression. Its downregulation correlates with severe cardiac arrhythmia stages.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Biochemistry
Background:
- Cardiac arrhythmia is a complex condition with poorly understood molecular underpinnings.
- WWP2 (an E3 ubiquitin-protein ligase) and PPP1R3A (protein phosphatase 1 regulatory subunit 3A) are implicated in cellular regulation.
- Identifying key molecular players in arrhythmia progression is crucial for therapeutic development.
Purpose of the Study:
- To investigate the roles of WWP2 and PPP1R3A in the pathological development of cardiac arrhythmia.
- To analyze the expression patterns of WWP2 and PPP1R3A at different stages of cardiac arrhythmia.
- To elucidate the regulatory relationship between WWP2 and PPP1R3A in cardiac arrhythmia.
Main Methods:
- Utilized leptin-deficient mice (C57BLKS-Leprdb/Leprdb) to model initial and severe cardiac arrhythmia.
- Employed histology, electrocardiography (ECG), immunohistochemistry, and Western blotting for analysis.
- Assessed cardiac tissue morphology, electrical activity, and protein expression levels.
Main Results:
- Histopathology revealed cardiac degeneration and tissue changes in arrhythmia models.
- ECG studies confirmed increased PP interval variations with disease progression.
- WWP2 expression increased significantly in severe arrhythmia, while PPP1R3A was upregulated in initial stages and downregulated in advanced stages.
- Silencing PPP1R3A enhanced WWP2 expression in initial arrhythmia, suggesting PPP1R3A controls WWP2.
Conclusions:
- PPP1R3A exhibits a potential protective role in the initial stages of cardiac arrhythmia by regulating WWP2.
- WWP2 expression is significantly elevated in severe cardiac arrhythmia.
- The interplay between PPP1R3A and WWP2 is critical in cardiac arrhythmia pathogenesis, particularly in early stages.
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